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Student-t background modeling for persons' fall detection through visual cues

机译:学生-T背景模型通过视觉提示进行跌倒检测

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This article presents a robust, real-time background subtraction algorithm able to operate properly in complex dynamically changing visual conditions and indoor/outdoor environments, based on a single, cheap monocular camera, like a webcam. This algorithm uses an image grid and models each pixel of the grid as a mixture of adaptive Student-t distributions. This approach makes this algorithm robust and efficient, in terms of computational cost and memory requirements, and thus suitable for large scale implementations. The proposed algorithm is applied in the problem of humans' fall detection that presents high complexity of visual content. Finally, the performances of this scheme and the scheme proposed in [1] by the same authors, are compared.
机译:本文介绍了一种能够在复杂的动态变化的视觉条件和室内/室外环境中正确运行的强大,实时背景减法算法,基于单眼摄像头,如网络摄像头。 该算法使用图像网格并将网格的每个像素模拟作为自适应学生-T分布的混合。 这种方法使该算法在计算成本和存储器要求方面使该算法具有稳健和高效,因此适用于大规模实现。 所提出的算法应用于人类坠落检测的问题,其具有高度复杂性的视觉内容。 最后,比较了该方案的性能和同一作者提出的[1]中提出的方案。

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